Total Electron Velocity Solution

STEP 0: Pre-Calculation Summary
Formula Used
Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation
Vtot = Vdc+V
This formula uses 3 Variables
Variables Used
Total Electron Velocity - (Measured in Meter per Second) - Total Electron Velocity refers to the combined velocity of electrons in a material or a system.
DC Electron Velocity - (Measured in Meter per Second) - DC Electron Velocity refers to the average speed at which electrons move through a conducting material.
Instantaneous Electron Velocity Perturbation - (Measured in Meter per Second) - Instantaneous Electron Velocity Perturbation refers to a sudden change in the velocity of an electron at a specific point in time.
STEP 1: Convert Input(s) to Base Unit
DC Electron Velocity: 3 Meter per Second --> 3 Meter per Second No Conversion Required
Instantaneous Electron Velocity Perturbation: 2 Meter per Second --> 2 Meter per Second No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Vtot = Vdc+V --> 3+2
Evaluating ... ...
Vtot = 5
STEP 3: Convert Result to Output's Unit
5 Meter per Second --> No Conversion Required
FINAL ANSWER
5 Meter per Second <-- Total Electron Velocity
(Calculation completed in 00.004 seconds)

Credits

Creator Image
Sinhgad College Of Engineering (SCOE), Pune
Simran Shravan Nishad has created this Calculator and 25+ more calculators!
Verifier Image
Verified by Ritwik Tripathi
Vellore Institute of Technology (VIT Vellore), Vellore
Ritwik Tripathi has verified this Calculator and 100+ more calculators!

20 Beam Tube Calculators

Microwave Voltage in Buncher Gap
​ Go Microwave Voltage in the Buncher Gap = (Amplitude of Signal/(Angular Frequency of Microwave Voltage*Average Transit Time))*(cos(Angular Frequency of Microwave Voltage*Entering Time)-cos(Resonant Angular Frequency+(Angular Frequency of Microwave Voltage*Buncher Gap Distance)/Velocity of Electron))
RF Output Power
​ Go RF Output Power = RF Input Power*exp(-2*RF Attenuation Constant*RF Circuit Length)+int((RF Power Generated/RF Circuit Length)*exp(-2*RF Attenuation Constant*(RF Circuit Length-x)),x,0,RF Circuit Length)
Repeller Voltage
​ Go Repeller Voltage = sqrt((8*Angular Frequency^2*Drift Space Length^2*Small Beam Voltage)/((2*pi*Number of Oscillation)-(pi/2))^2*([Mass-e]/[Charge-e]))-Small Beam Voltage
Total Depletion for WDM System
​ Go Total Depletion for a WDM System = sum(x,2,Number of Channels,Raman Gain Coefficient*Channel Power*Effective Length/Effective Area)
Average Power Loss in Resonator
​ Go Average Power Loss in Resonator = (Surface Resistance of resonator/2)*(int(((Tangential Magnetic Intensity Peak Value)^2)*x,x,0,Radius of resonator))
Plasma Frequency
​ Go Plasma Frequency = sqrt(([Charge-e]*DC Electron Charge Density)/([Mass-e]*[Permitivity-vacuum]))
Total Energy Stored in Resonator
​ Go Total Energy Stored in Resonator = int((Permittivity of Medium/2*Electric Field Intensity^2)*x,x,0,Resonator Volume)
Skin Depth
​ Go Skin Depth = sqrt(Resistivity/(pi*Relative Permeability*Frequency))
Carrier Frequency in Spectral Line
​ Go Carrier Frequency = Spectral Line Frequency-Number of Samples*Repetition Frequency
Total Electron Beam Current Density
​ Go Total Electron Beam Current Density = -DC Beam Current Density+Instantaneous RF Beam Current Perturbation
Total Electron Velocity
​ Go Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation
Total Charge Density
​ Go Total Charge Density = -DC Electron Charge Density+Instantaneous RF Charge Density
Reduced Plasma Frequency
​ Go Reduced Plasma Frequency = Plasma Frequency*Space Charge Reduction Factor
Power Obtained from DC Power Supply
​ Go DC Power Supply = Power Generated in Anode Circuit/Electronic Efficiency
Power Generated in Anode Circuit
​ Go Power Generated in Anode Circuit = DC Power Supply*Electronic Efficiency
Maximum Voltage Gain at Resonance
​ Go Maximum Voltage Gain at Resonance = Transconductance/Conductance
Return Loss
​ Go Return Loss = -20*log10(Reflection Coefficient)
Rectangular Microwave Pulse Peak Power
​ Go Pulse Peak Power = Average Power/Duty Cycle
AC Power Supplied by Beam Voltage
​ Go AC Power Supply = (Voltage*Current)/2
DC Power Supplied by Beam Voltage
​ Go DC Power Supply = Voltage*Current

Total Electron Velocity Formula

Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation
Vtot = Vdc+V

What is significance of electron velocity?

The control and understanding of electron velocities are fundamental in modern electronics, telecommunications, and many areas of technology that rely on the movement and manipulation of electric charge.





How to Calculate Total Electron Velocity?

Total Electron Velocity calculator uses Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation to calculate the Total Electron Velocity, The Total Electron Velocity formula is the vector sum of the individual velocities of all the electrons present. Total Electron Velocity is denoted by Vtot symbol.

How to calculate Total Electron Velocity using this online calculator? To use this online calculator for Total Electron Velocity, enter DC Electron Velocity (Vdc) & Instantaneous Electron Velocity Perturbation (V) and hit the calculate button. Here is how the Total Electron Velocity calculation can be explained with given input values -> 5 = 3+2.

FAQ

What is Total Electron Velocity?
The Total Electron Velocity formula is the vector sum of the individual velocities of all the electrons present and is represented as Vtot = Vdc+V or Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation. DC Electron Velocity refers to the average speed at which electrons move through a conducting material & Instantaneous Electron Velocity Perturbation refers to a sudden change in the velocity of an electron at a specific point in time.
How to calculate Total Electron Velocity?
The Total Electron Velocity formula is the vector sum of the individual velocities of all the electrons present is calculated using Total Electron Velocity = DC Electron Velocity+Instantaneous Electron Velocity Perturbation. To calculate Total Electron Velocity, you need DC Electron Velocity (Vdc) & Instantaneous Electron Velocity Perturbation (V). With our tool, you need to enter the respective value for DC Electron Velocity & Instantaneous Electron Velocity Perturbation and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
Let Others Know
Facebook
Twitter
Reddit
LinkedIn
Email
WhatsApp
Copied!